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January 18, 2026Toxins0 citationsOpen Access

Biochemical and Genetic Characterization of Ergot Alkaloid Biosynthesis in Aspergillus aspearensis

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JFJessica L. FussDPDaniel G. Panaccione

Key Points

  • To investigate the biochemical and genetic pathways of ergot alkaloid biosynthesis in Aspergillus aspearensis.
  • Cultured Aspergillus aspearensis to analyze alkaloid production
  • Examined conidia and sclerotia for alkaloid concentrations
  • Injected spores into larvae of Galleria mellonella to assess pathogenicity
  • Sequenced the genome to identify gene clusters related to alkaloid synthesis
  • A. aspearensis produced high levels of lysergic acid α-hydroxyethylamide and other derivatives
  • Conidia contained more alkaloids than sclerotia
  • About 50% of the alkaloids were secreted into the culture medium
  • The fungus affected larvae, leading to faster mortality rates compared to controls
  • Two complete ergot alkaloid synthesis gene clusters were identified in the genome.

Abstract

Ergot alkaloids derived from lysergic acid have impacted humankind significantly as toxins in agriculture and as the foundations of several pharmaceuticals. Few fungi capable of producing lysergic acid derivatives have been found outside the family Clavicipitaceae. Based on its phylogenetic placement, we hypothesized the recently described fungus Aspergillus aspearensis (Aspergillaceae) would synthesize lysergic acid amides. Cultures of A. aspearensis produced abundant lysergic acid α-hydroxyethylamide (LAH) and lesser amounts of other lysergic acid derivatives. Conidia contained high concentrations of ergot alkaloids, whereas sclerotia contained significantly less. Approximately half of the ergot alkaloids produced were secreted into the culture medium. When spores of A. aspearensis were injected into larvae of the model insect Galleria mellonella, larvae died at a significantly faster rate than control larvae. The fungus produced ergot alkaloids during insect pathogenesis and later produced conidia and sclerotia on cadavers, indicating it can complete its life cycle in an insect. The genome of A. aspearensis contained two complete ergot alkaloid synthesis gene clusters, similar to those of A. leporis; however, unlike its sister species, none of the ergot cluster genes were pseudogenized. Aspergillus aspearensis is a newly discovered source of ergot alkaloids and may be useful for studying and producing these important chemicals.

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Cite This Study

Fuss et al. (2026) studied this question.

synapsesocial.com/papers/696c7835eb60fb80d13967a5https://doi.org/10.3390/toxins18010047
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